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Control technique for reliable operation of the synchronous series capacitor tapped inductor converter

机译:同步串联电容器螺纹电感转换器可靠运行的控制技术

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In the context of reducing total CO2 emissions as well as reducing the total copper cable length and weight on cars, automotive manufacturers propose to derive all the supply voltages from a single 48 V bus through high step-down ratio dc-dc converters. The series capacitor tapped inductor (SCTI) converter is a promising topology for efficient single-stage step-down conversion from the 48 V bus. In the synchronous version of the SCTI, however, turn-off of the synchronous rectifier at positive drain-to-source current leads to a voltage spike and to a potential catastrophic failure of the converter. In this paper a simple control technique is proposed which prevents the foregoing condition to occur. The approach enables a reliable operation of the synchronous SCTI topology without disrupting its main features and advantages, and eliminating the need for additional snubbers, voltage clamps or auxiliary windings. The approach is validated via computer simulations and experimental tests on a 48 V-to-1.5 V, 4 A SCTI converter prototype.
机译:在减少总CO 2 排放的背景下以及减少汽车的总铜缆长度和重量,汽车制造商建议通过高压降低从单个48 V总线推导出所有电源电压比率DC-DC转换器。串联电容器螺纹电感(SCTI)转换器是一个有前途的拓扑,用于从48 V总线上有效的单级降压转换。然而,在SCTI的同步版本中,在正漏电到源电流下的同步整流器的关断导致电压尖峰和转换器的潜在灾难性故障。在本文中,提出了一种简单的控制技术,这可以防止发生前述条件。该方法使得同步SCTI拓扑的可靠运行,而不会破坏其主要特征和优点,并消除了对额外的缓冲器,电压夹或辅助绕组的需求。通过计算机模拟和48 V-1.5 V,4 A SCTI转换器原型的实验测试验证该方法。

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